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Multifunctional Bioreactor System for Human Intestine Tissues

[Image: see text] The three-dimensional (3D) cultivation of intestinal cells and tissues in dynamic bioreactor systems to represent in vivo intestinal microenvironments is essential for developing regenerative medicine treatments for intestinal diseases. We have previously developed in vitro human i...

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Autores principales: Zhou, Wenda, Chen, Ying, Roh, Terrence, Lin, Yinan, Ling, Shengjie, Zhao, Siwei, Lin, James D., Khalil, Noor, Cairns, Dana M., Manousiouthakis, Eleana, Tse, Megan, Kaplan, David L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5761048/
https://www.ncbi.nlm.nih.gov/pubmed/29333491
http://dx.doi.org/10.1021/acsbiomaterials.7b00794
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author Zhou, Wenda
Chen, Ying
Roh, Terrence
Lin, Yinan
Ling, Shengjie
Zhao, Siwei
Lin, James D.
Khalil, Noor
Cairns, Dana M.
Manousiouthakis, Eleana
Tse, Megan
Kaplan, David L.
author_facet Zhou, Wenda
Chen, Ying
Roh, Terrence
Lin, Yinan
Ling, Shengjie
Zhao, Siwei
Lin, James D.
Khalil, Noor
Cairns, Dana M.
Manousiouthakis, Eleana
Tse, Megan
Kaplan, David L.
author_sort Zhou, Wenda
collection PubMed
description [Image: see text] The three-dimensional (3D) cultivation of intestinal cells and tissues in dynamic bioreactor systems to represent in vivo intestinal microenvironments is essential for developing regenerative medicine treatments for intestinal diseases. We have previously developed in vitro human intestinal tissue systems using a 3D porous silk scaffold system with intestinal architectures and topographical features for the adhesion, growth, and differentiation of intestinal cells under static culture conditions. In this study, we designed and fabricated a multifunctional bioreactor system that incorporates pre-epithelialized 3D silk scaffolds in a dynamic culture environment for in vitro engineering of human intestine tissues. The bioreactor system allows for control of oxygen levels in perfusion fluids (aerobic simulated intestinal fluid (SIF), microaerobic SIF, and anaerobic SIF), while ensuring control over the mechanical and chemical microenvironments present in native human intestines. The bioreactor system also enables 3D cell culture with spatial separation and cultivation of cocultured epithelial and stromal cells. Preliminary functional analysis of tissues housed in the bioreactor demonstrated that the 3D tissue constructs survived and maintained typical phenotypes of intestinal epithelium, including epithelial tight junction formation, intestinal biomarker expression, microvilli formation, and mucus secretion. The unique combination of a dynamic bioreactor and 3D intestinal constructs offers utility for engineering human intestinal tissues for the study of intestinal diseases and discovery options for new treatments.
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spelling pubmed-57610482018-01-11 Multifunctional Bioreactor System for Human Intestine Tissues Zhou, Wenda Chen, Ying Roh, Terrence Lin, Yinan Ling, Shengjie Zhao, Siwei Lin, James D. Khalil, Noor Cairns, Dana M. Manousiouthakis, Eleana Tse, Megan Kaplan, David L. ACS Biomater Sci Eng [Image: see text] The three-dimensional (3D) cultivation of intestinal cells and tissues in dynamic bioreactor systems to represent in vivo intestinal microenvironments is essential for developing regenerative medicine treatments for intestinal diseases. We have previously developed in vitro human intestinal tissue systems using a 3D porous silk scaffold system with intestinal architectures and topographical features for the adhesion, growth, and differentiation of intestinal cells under static culture conditions. In this study, we designed and fabricated a multifunctional bioreactor system that incorporates pre-epithelialized 3D silk scaffolds in a dynamic culture environment for in vitro engineering of human intestine tissues. The bioreactor system allows for control of oxygen levels in perfusion fluids (aerobic simulated intestinal fluid (SIF), microaerobic SIF, and anaerobic SIF), while ensuring control over the mechanical and chemical microenvironments present in native human intestines. The bioreactor system also enables 3D cell culture with spatial separation and cultivation of cocultured epithelial and stromal cells. Preliminary functional analysis of tissues housed in the bioreactor demonstrated that the 3D tissue constructs survived and maintained typical phenotypes of intestinal epithelium, including epithelial tight junction formation, intestinal biomarker expression, microvilli formation, and mucus secretion. The unique combination of a dynamic bioreactor and 3D intestinal constructs offers utility for engineering human intestinal tissues for the study of intestinal diseases and discovery options for new treatments. American Chemical Society 2017-12-08 2018-01-08 /pmc/articles/PMC5761048/ /pubmed/29333491 http://dx.doi.org/10.1021/acsbiomaterials.7b00794 Text en Copyright © 2017 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Zhou, Wenda
Chen, Ying
Roh, Terrence
Lin, Yinan
Ling, Shengjie
Zhao, Siwei
Lin, James D.
Khalil, Noor
Cairns, Dana M.
Manousiouthakis, Eleana
Tse, Megan
Kaplan, David L.
Multifunctional Bioreactor System for Human Intestine Tissues
title Multifunctional Bioreactor System for Human Intestine Tissues
title_full Multifunctional Bioreactor System for Human Intestine Tissues
title_fullStr Multifunctional Bioreactor System for Human Intestine Tissues
title_full_unstemmed Multifunctional Bioreactor System for Human Intestine Tissues
title_short Multifunctional Bioreactor System for Human Intestine Tissues
title_sort multifunctional bioreactor system for human intestine tissues
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5761048/
https://www.ncbi.nlm.nih.gov/pubmed/29333491
http://dx.doi.org/10.1021/acsbiomaterials.7b00794
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